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Trying to find similar movies on the basis of tags. But I also need all the tags for the given movie and its each similar movie (to do some calculations). But surprisingly collect(h.w) gives repeated values of h.w (where w is a property of h)

Here is the cypher query. Please help.

MATCH (m:Movie{id:1})-[h1:Has]->(t:Tag)<-[h2:Has]-(sm:Movie),
(m)-[h:Has]->(t0:Tag), 
(sm)-[H:Has]->(t1:Tag) 
WHERE m <> sm 
RETURN distinct(sm), collect(h.w)

Basically a query like

MATCH (x)-[h]->(y), (a)-[H]->(b) 
RETURN h

is returning each result for h n times where n is the number of results for H. Any way around this?

share|improve this question
    
Are b and sb supposed to be m and sm? Could you say again what you want returned? It looks like you return the related movie sm, but then you collect tags from m and group them by sm... that may be your problem. Do you have a console sample? –  jjaderberg Apr 25 '14 at 11:05
    
Ahh yes, that was a typing error, I am sorry for that. Have corrected the code. I want all possible relationships connected to the movie m & sm ,and also only the relationships on the tag which are common to m and sm. –  red-devil Apr 25 '14 at 15:11
    
That is I want h, H, h1, h2. But somehow there value is getting repeated which is affecting the calculations related to them. –  red-devil Apr 25 '14 at 15:16

2 Answers 2

up vote 1 down vote accepted

I replicated the data model for this question to help answer it.

Example data model

I then setup a sample dataset using Neo4j's online console: http://console.neo4j.org/?id=dakmi3

Running the following query from your question:

MATCH (m:Movie { title: "The Matrix" })-[h1:HAS_TAG]->(t:Tag),
      (t)<-[h2:HAS_TAG]-(sm:Movie),
      (m)-[h:HAS_TAG]->(t0:Tag),
      (sm)-[H:HAS_TAG]->(t1:Tag)
WHERE m <> sm
RETURN DISTINCT sm, collect(h.weight)

Which results in:

(1:Movie {title:"The Matrix: Reloaded"}) [0.31, 0.12, 0.31, 0.12, 0.31, 0.01, 0.31, 0.01]

The issue is that there are duplicate relationships being returned, which results in duplicated weight in the collection. The solution is to use WITH to limit relationships to distinct records and then return the collection of weights of those relationships.

MATCH (m:Movie { title: "The Matrix" })-[h1:HAS_TAG]->(t:Tag),
      (t)<-[h2:HAS_TAG]-(sm:Movie),
      (m)-[h:HAS_TAG]->(t0:Tag),
      (sm)-[H:HAS_TAG]->(t1:Tag)
WHERE m <> sm
WITH DISTINCT sm, h
RETURN sm, collect(h.weight)

(1:Movie {title:"The Matrix: Reloaded"}) [0.31, 0.12, 0.01]

share|improve this answer
    
Thanks but finding recommendations is not the issue for me. The problem is in the calculation related to it. a query like MATCH (x)-[h]->(y), (a)-[H]->(b) RETURN h is returning each result for h n times where n is the number of results for H. Any way around this? –  red-devil Apr 25 '14 at 21:42
    
You need to explain more about your data model. What is h.w? –  Kenny Bastani Apr 25 '14 at 21:57
    
h is the relationship between the movie and any of its tags..(m)-[h:Has]->(t0:Tag), while in h.w (w is a property of h) –  red-devil Apr 25 '14 at 22:04
    
I guess what's been explained above is sufficient. What more you think is required? –  red-devil Apr 25 '14 at 22:06
    
I understand that w is a property of h, but what is it? –  Kenny Bastani Apr 25 '14 at 22:09

I'm afraid I still don't quite get your intention, but about the general question of duplicate results, that is just the way a disconnected pattern works. Cypher must consider something like

(:A), (:B)

as one pattern, not two. That means that any satisfying graph structure is considered a distinct match. Suppose you have the graph resulting from

CREATE (:A), (:B), (:B)

and query it for the pattern above, you get two results, namely

neo4j-sh (?)$ MATCH (a:A),(b:B) RETURN *;
==> +-------------------------------+
==> | a             | b             |
==> +-------------------------------+
==> | Node[15204]{} | Node[15207]{} |
==> | Node[15204]{} | Node[15208]{} |
==> +-------------------------------+
==> 2 rows
==> 53 ms

Similarly when matching your pattern (x)-[h]->(y), (a)-[H]->(b) cypher considers each combination of the two pattern parts to make up a unique match for the one whole pattern–so the results for h are compounded by the results for H.

This the way the pattern matching works. To achieve what you want you could first consider if you really need to query for a disconnected pattern. If you do, or if a connected pattern also generates redundant matches, then aggregate one or more of the pattern parts. A simple case might be

CREATE (a:A), (b1:B), (b2:B)
    , (c1:C), (c2:C), (c3:C)
    , a-[:X]->b1, a-[:X]->b2
    , a-[:Y]->c1, a-[:Y]->c2, a-[:Y]->c3

queried with

MATCH (b:B)<-[:X]-(a:A)-[:Y]->(c:C)              // with 1 (a), 2 (b) and 3 (c) you get 6 matched paths
RETURN a, collect (b) as bb, collect (c) as cc   // after aggregation by (a) there is one path

Sometimes it makes sense to do the aggregation as an intermediate step

MATCH (b)<-[:X]-(a:A)              // 2 paths
WITH a, collect(b) as bb           // 1 path
MATCH a-[:Y]->(c)                  // 3 paths
RETURN a, bb, collect(c) as cc     // 1 path
share|improve this answer
    
Thanks for the insight. –  red-devil Apr 25 '14 at 23:52

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